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Dynamic crack propagation and arrest in PWR pressure vessel steel:Interpretation of experiment with the X-FEM method

机译:压水堆压力容器钢中裂纹的动态扩展和阻止:X-FEM方法的实验解释

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In the frame of analysis of the pressure thermal shock in a PWR RVP and the associated R&D activities, some developments are performed at CEA on the dynamic brittle propagation and crack arrest. This paper presents a PhD work on the modeling of the dynamic brittle crack growth. For the analyses, an important experimental work is performed on different geometries using a French RPV ferritic steel: Compact Tension specimens with different thickness, isothermal rings under compression with different positions of the initial defect to study a mixed mode configuration, and a ring submitted to thermal shock. The first part of this paper details the test conditions and main results. To propose an accurate interpretation of the crack growth, a viscous-elastic-plastic dynamic model is used. The strain rate influence is taken into account based on Cowper-Symond's law (characterization was made from Split Hopkinson Pressure Bar tests). To model the crack propagation in the Finite Element calculation, extended Finite Element Method (X-FEM) is used. The implementation of these specific elements in the CEA F.E. software CAST3M is described in the second part of this paper. This numerical technique avoids re-meshing, because the crack progress is directly incorporated in the degrees of freedom of the elements crossed by the crack. The last part of this paper compares the F.E. predictions to the experimental measurements using different criteria. In particular, we focused on a RKR (Ritchie-Knott-Rice) like criterion using a critical principal stress in the front of the crack tip during the dynamic crack extension. Critical stress is found to depend on crack speed, or equivalently on strain rate. Good results are reported concerning predictive simulations.
机译:在分析压水堆RVP中的压力热冲击以及相关的R&D活动的框架中,CEA在动态脆性扩展和裂纹阻止方面进行了一些开发。本文介绍了有关动态脆性裂纹扩展建模的博士学位。为了进行分析,使用法国RPV铁素体钢在不同的几何形状上进行了重要的实验工作:具有不同厚度的致密拉伸试样,在初始缺陷的不同位置受压的等温环以研究混合模式配置,以及将环提交给热冲击。本文的第一部分详细介绍了测试条件和主要结果。为了提出对裂纹扩展的准确解释,使用了粘弹塑性动力学模型。根据考珀-西蒙德定律考虑了应变速率的影响(特征来自于斯普利特霍普金森压力棒试验)。为了在有限元计算中模拟裂纹扩展,使用扩展有限元方法(X-FEM)。本文第二部分介绍了CEA F.E.软件CAST3M中这些特定元素的实现。此数值技术避免了重新网格化,因为裂纹的进展直接包含在裂纹所穿过的元素的自由度中。本文的最后一部分将F.E.预测与使用不同标准的实验测量结果进行了比较。特别是,在动态裂纹扩展过程中,我们在裂纹尖端的前端使用临界主应力,重点关注类似RKR(Ritchie-Knott-Rice)的准则。发现临界应力取决于裂纹速度,或等效地取决于应变率。报告了有关预测模拟的良好结果。

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